One Fits All: A Unified Synchrotron Model Explains GRBs with FRED-Shaped Pulses
arXiv:2308.00772 · doi:10.3847/1538-4357/ad14fb
Abstract
The analysis of gamma-ray burst (GRB) spectra often relies on empirical models lacking a distinct physical explanation. Previous attempts to couple physical models with observed data focus on individual burst studies, fitting models to segmented spectra with independent physical parameters. However, these approaches typically neglect to explain the time evolution of observed spectra. In this study, we propose a novel approach by incorporating the synchrotron radiation model to provide a self-consistent explanation for a selection of single-pulse GRBs. Our study comprehensively tests the synchrotron model under a unified physical condition, such as a single injection event of electrons. By tracing the evolution of cooling electrons in a decaying magnetic field, our model predicts time-dependent observed spectra that align well with the data. Using a single set of physical parameters, our model successfully fits all time-resolved spectra within each burst. Our model suggests that the rising phase of the GRB light curve results from the increasing number of radiating electrons, while the declining phase is attributed to the curvature effect, electron cooling, and the decaying magnetic field. Our model provides a straightforward interpretation of the peak energy's evolution, linked to the decline of the magnetic field and electron cooling due to the expansion of the GRB emission region. Our findings strongly support the notion that spectral and temporal evolution in GRB pulses originates from the expansion of the GRB emission region, with an initial radius of approximately cm, and synchrotron radiation as the underlying emission mechanism.
ApJ in press, author version, 28 pages, 19 figures, 4 tables
References in corpus (15)
- The Internal-Collision-Induced Magnetic Reconnection and Turbulence (ICMART) Model of Gamma-Ray Bursts
- A Comprehensive Analysis of Fermi Gamma-Ray Burst Data. I. Spectral Components and Their Possible Physical Origins of LAT/GBM GRBs
- A long-duration gamma-ray burst with a peculiar origin
- A Comprehensive Analysis of Fermi Gamma-ray Burst Data: II. -Evolution Patterns and Implications for the Observed Spectrum-Luminosity Relations
- The Ep,i - Eiso correlation: type I gamma-ray bursts and the new classification method
- Synchrotron emission in small scale magnetic field as possible explanation for prompt emission spectra of gamma-ray bursts
- Detection of Low-energy Breaks in Gamma-Ray Burst Prompt Emission Spectra
- Slow Heating Model of Gamma-Ray Burst: Photon Spectrum and Delayed Emission
- Low-energy Spectra of Gamma-ray Bursts from Cooling Electrons
- Synchrotron Radiation Dominates the Extremely Bright GRB 221009A
- An Observed Correlation Between Thermal and Non-Thermal Emission in Gamma-Ray Bursts
- Improved Fermi-GBM GRB localizations using BALROG
- The long-active afterglow of GRB 210204A: Detection of the most delayed flares in a Gamma-Ray Burst
- Evidence of Photosphere Emission Origin for Gamma-Ray Burst Prompt Emission
- Temporal and Spectral Evolution of Gamma-ray Burst Broad Pulses: Identification of High Latitude Emission in the Prompt Emission
Cited by in corpus (4)
- Gamma-Ray Burst prompt emission from the synchrotron radiation of relativistic electrons in a rapidly decaying magnetic field
- Jet-Structure Imprint on the Curvature Tail of Gamma-Ray Burst Prompt Emission
- Is gamma-ray burst polarization from photosphere emission?
- Numerical simulations of internal shocks in spherical geometry: hydrodynamics and prompt emission